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无细胞合成及寄生原生动物锥虫鞘脂合酶的功能特征分析。

Cell-free synthesis and functional characterization of sphingolipid synthases from parasitic trypanosomatid protozoa.

机构信息

Department of Medical Microbiology and Immunology, University of Wisconsin School of Medicine and Public Health, Madison, WI 53706, USA.

出版信息

J Biol Chem. 2010 Jul 2;285(27):20580-7. doi: 10.1074/jbc.M110.127662. Epub 2010 May 10.

Abstract

The Trypanosoma brucei genome has four highly similar genes encoding sphingolipid synthases (TbSLS1-4). TbSLSs are polytopic membrane proteins that are essential for viability of the pathogenic bloodstream stage of this human protozoan parasite and, consequently, can be considered as potential drug targets. TbSLS4 was shown previously to be a bifunctional sphingomyelin/ethanolamine phosphorylceramide synthase, whereas functions of the others were not characterized. Using a recently described liposome-supplemented cell-free synthesis system, which eliminates complications from background cellular activities, we now unambiguously define the enzymatic specificity of the entire gene family. TbSLS1 produces inositol phosphorylceramide, TbSLS2 produces ethanolamine phosphorylceramide, and TbSLS3 is bifunctional, like TbSLS4. These findings indicate that TbSLS1 is uniquely responsible for synthesis of inositol phosphorylceramide in insect stage parasites, in agreement with published expression array data (17). This approach also revealed that the Trypanosoma cruzi ortholog (TcSLS1) is a dedicated inositol phosphorylceramide synthase. The cell-free synthesis system allowed rapid optimization of the reaction conditions for these enzymes and site-specific mutagenesis to alter end product specificity. A single residue at position 252 (TbSLS1, Ser(252); TbSLS3, Phe(252)) strongly influences enzymatic specificity. We also have used this system to demonstrate that aureobasidin A, a potent inhibitor of fungal inositol phosphorylceramide synthases, does not significantly affect any of the TbSLS activities, consistent with the phylogenetic distance of these two clades of sphingolipid synthases. These results represent the first application of cell-free synthesis for the rapid preparation and functional annotation of integral membrane proteins and thus illustrate its utility in studying otherwise intractable enzyme systems.

摘要

布氏锥虫基因组有四个高度相似的基因编码鞘脂合酶(TbSLS1-4)。TbSLS 是多跨膜蛋白,对于这种人体原生动物寄生虫的致病性血流阶段的生存至关重要,因此可以被认为是潜在的药物靶点。先前已经表明 TbSLS4 是一种具有双功能的鞘氨醇/乙醇胺磷酸神经酰胺合酶,而其他酶的功能尚未被表征。使用最近描述的含有脂质体的无细胞合成系统,该系统消除了背景细胞活性的复杂性,我们现在可以明确地定义整个基因家族的酶特异性。TbSLS1 产生肌醇磷酸神经酰胺,TbSLS2 产生乙醇胺磷酸神经酰胺,而 TbSLS3 与 TbSLS4 一样具有双功能。这些发现表明,TbSLS1 是唯一负责合成昆虫阶段寄生虫中肌醇磷酸神经酰胺的酶,这与已发表的表达谱数据一致(17)。这种方法还表明,克氏锥虫的同源物(TcSLS1)是一种专门的肌醇磷酸神经酰胺合酶。无细胞合成系统允许快速优化这些酶的反应条件,并进行定点突变以改变终产物特异性。位置 252 处的单个残基(TbSLS1,Ser(252);TbSLS3,Phe(252))强烈影响酶特异性。我们还使用该系统证明,金核菌素 A 是一种有效的真菌肌醇磷酸神经酰胺合酶抑制剂,对任何 TbSLS 活性均无明显影响,这与这两个鞘脂合酶分支的系统发育距离一致。这些结果代表了无细胞合成在快速制备和功能注释完整膜蛋白方面的首次应用,因此说明了它在研究其他难以处理的酶系统方面的实用性。

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